Intrinsically Stable Amorphous Phases Unlock Sustainable Potassium Anodes
Abstract
ABSTRACT Non‐graphite‐based anodes for potassium‐ion batteries offer high capacity but suffer from severe structural degradation due to repeated phase transitions during cycling. Here, we introduce an amorphous phase engineering strategy that fundamentally addresses this instability. The intrinsic structural isotropy and open framework of amorphous materials inherently mitigate volume strain, enabling exceptional long‐term cycling stability. As a proof of concept, an amorphous (Bi,Sb)@C electrode exhibits an ultralow capacity decay rate of merely 0.005% per cycle over 3200 cycles (equivalent to 1100 days) at 100 mA g −1 . This work establishes amorphous phase engineering as a general design paradigm, opening a decisive pathway toward durable, long‐life potassium‐ion batteries and potentially other energy storage systems facing similar stability challenges.
Article Details
Authors (9)
Quan Pei
School of Material Science and Engineering, Xiang Tan University 1 , Xiangtan 411105,
Wang Lyu
School of Physics and Electronics Hunan University Changsha P. R. China
Tong Yuan
Key Laboratory of Low Dimensional Materials and Application Technology of Ministry of Education School of Materials Science and Engineering Xiangtan University Xiangtan Hunan P. R. China
Qingfeng Zhang
College of Chemistry and Molecular Sciences, Hubei Key Laboratory of Electrochemical Power Sources
Xuedong Zhang
Shuhong Xie
Apparao M. Rao
Jianyu Huang
Clean Nano Energy Center, State Key Laboratory of Metastable Materials Science and Technology
Bingan Lu
School of Physics and Electronics